Grading hundreds of thousands of Graduate Entrance Exams is a hard work. It is even harder to design a process to make the results as fair as possible. One way is to assign each exam problem to 3 independent experts. If they do not agree to each other,
a judge is invited to make the final decision. Now you are asked to write a program to help this process.
For each problem, there is a full-mark P and a tolerance T(<P) given. The grading rules are:
? A problem will first be assigned to 2 experts, to obtain G1 and G2. If the difference is within the tolerance, that is, if |G1 - G2| ≤ T, this problem‘s grade will be the average of G1 and G2.
? If the difference exceeds T, the 3rd expert will give G3.
? If G3 is within the tolerance with either G1 or G2, but NOT both, then this problem‘s grade will be the average of G3 and the closest grade.
? If G3 is within the tolerance with both G1 and G2, then this problem‘s grade will be the maximum of the three grades.
? If G3 is within the tolerance with neither G1 nor G2, a judge will give the final grade GJ.
Each input file may contain more than one test case.
Each case occupies a line containing six positive integers: P, T, G1, G2, G3, and GJ, as described in the problem. It is guaranteed that all the grades are valid, that is, in the interval [0, P].
For each test case you should output the final grade of the problem in a line. The answer must be accurate to 1 decimal place.
20 2 15 13 10 18
14.0
AC代码:
//本题不难,看清题目分情况讨论就行,但有几个地方需要注意; //1.abs()在头文件stdlib.h里,fabs()在math.h里 //2.读入的是整数,输出的是格式化的浮点数 #include<stdio.h> #include<math.h> int main() { //freopen("in.txt","r",stdin); int P, T, G1, G2, G3, GJ; double grade; while(scanf("%d %d %d %d %d %d",&P,&T,&G1,&G2,&G3,&GJ)!=EOF) { if((int)fabs(G1-G2)<=T) grade = (G1+G2)/2.0; //注意除数是2.0,不然‘/‘就成取整符号而不是除号了 else { int t1, t2; t1 = (int) fabs(G3-G1); //fabs的返回值的double,要强制转换为int t2 = (int) fabs(G3-G2); if((t1<=T && t2>T) || (t2<=T && t1>T)) { if(t1 < t2) grade = (G3+G1)/2.0; else grade = (G3+G2)/2.0; } if(t1<=T && t2<=T) { int max; max = G1 > G2 ? G1 : G2; max = max > G3 ? max : G3; grade = max; } if(t1>T && t2>T) grade = GJ; } printf("%.1lf\n",grade); //注意输出格式 } return 0; }
题目1002:Grading 2011年浙江大学计算机及软件工程研究生机试真题,布布扣,bubuko.com
题目1002:Grading 2011年浙江大学计算机及软件工程研究生机试真题
原文:http://blog.csdn.net/zjfclh/article/details/21342413